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Variable precision multigranulation rough fuzzy set approach to multiple attribute group decision-making based on λ-similarity relation

机译:基于λ-相似关系的变精度多粒度粗糙模糊集多属性群决策

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This study proposes a fuzzy multigranulation rough set approach to the problem of multiple attribute group decision-making with uncertainty. Based on the classical Pawlak rough set theory, we define the A similarity (0 = lambda = 1) relation classes over the universe of discourse by introducing a distance measure to all alternatives with respect to attribute set. Subsequently, we present the alpha(0.5 alpha = 1) rough approximation of a crisp decision-making object and a fuzzy decision-making object under the framework of multigranulation rough set theory, respectively. That is, we establish the variable precision multigranulation rough set model and variable precision multigranulation rough fuzzy set model based on lambda-similarity relation, respectively. Meanwhile, we discuss the interrelationship between the proposed multigranulation rough fuzzy set model and the existing generalized rough set models. After that, we construct a new approach to multiple attribute group decision making problems based on variable precision multigranulation rough fuzzy set theory. The decision-making procedure and the methodology as well as the algorithm of the proposed method are given and a detailed comparison of the traditional methods to multiple attribute group decision-making problems illustrates the advantages and limitations. Finally, an example of handling multiple criteria group decision-making problem of evaluation of emergency plans for unconventional emergency events illustrates this approach. The main contribution of this paper is twofold. One is to provide a new way to construct multigranulation rough set model with the fuzzy environment. Another is to try making a new way to handle multiple criteria group decision making problems based on generalized rough set theory and methodologies.
机译:针对不确定性的多属性群决策问题,本文提出了一种模糊的多粒度粗糙集方法。基于经典的Pawlak粗糙集理论,我们通过对所有关于属性集的替代方法引入距离度量来定义话语范围内的A相似性(0 <= lambda <= 1)关系类。随后,我们在多粒度粗糙集理论的框架下,分别给出了脆性决策对象和模糊决策对象的alpha(0.5

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